Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications

For patients suffering bradycardia, i.e., too slow heart rhythm, the common treatment is having a pacemaker implanted. The pacemaker system consists of the pacemaker and a pacing lead. The pacing lead is connected to the pacemaker and at the other end there is a stimulation electrode. The most commo...

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Main Author: Örnberg, Andreas
Format: Others
Language:English
Published: KTH, Korrosionslära 2007
Subjects:
Ta
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4650
http://nbn-resolving.de/urn:isbn:978-91-7178-809-2
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-46502013-01-08T13:10:39ZStudy of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead ApplicationsengÖrnberg, AndreasKTH, KorrosionsläraStockholm : KTH2007Co-base alloy35N LTMP35NTaTiN coatingelectrochemical behaviourcorrosion resistanceChemistryKemiFor patients suffering bradycardia, i.e., too slow heart rhythm, the common treatment is having a pacemaker implanted. The pacemaker system consists of the pacemaker and a pacing lead. The pacing lead is connected to the pacemaker and at the other end there is a stimulation electrode. The most common conductor material is a cobalt-based super alloy (MP35N® or 35N LT®), with the main constituents Ni, Co, Cr and Mo. The pacemaker electrode is often made of a substrate material with a rough surface coating. The substrate materials are predominantly platinum/iridium alloy and titanium. The material choice is of great importance for the performance and stability during long-term service. Excellent corrosion resistance is required to minimize elution of metal ions in the human body. In this thesis, the electrochemical behaviour and corrosion resistance of the Co-based alloys and Ta (as electrode substrate), in a phosphate buffer saline (PBS) solution with and without addition of H2O2, was investigated by means of potentiodynamic polarization, cyclic voltammetry, electrochemical impedance spectroscopy and simulated pacemaker pulsing. The metal release from the Co-based alloy during the passivation treatment and exposure in the synthetic biological media was measured by using inductive coupled plasma - atomic emission spectroscopy (ICP-AES). Moreover, surface composition was analyzed by using x-ray photoelectron spectroscopy. The results show that the chemical passivation of Co-based alloy 35N LT® increased the corrosion resistance and reduced Co release significantly, even in more hostile environment, i.e. PBS with addition of H2O2. The increased corrosion resistance is due to the Cr enrichment in the surface layer. The reduced Co release is due to a preferential dissolution of Co from the surface oxide layer during the chemical passivation. The electrochemical investigation of uncoated and rough TiN coated Ta show that uncoated Ta is not suitable electrode material due to formation of a highly resistive surface oxide film. Whereas the rough TiN coated Ta exhibits desirable electrochemical performance for pacemaker electrodes. The addition of H2O2 in the PBS has a large influence on the electrochemical behaviour of Ta, but the influence is small on the rough TiN coated Ta. QC 20101122Licentiate thesis, comprehensive summaryinfo:eu-repo/semantics/masterThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4650urn:isbn:978-91-7178-809-2Trita-CHE-Report, 1654-1081 ; 2007:79application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Others
sources NDLTD
topic Co-base alloy
35N LT
MP35N
Ta
TiN coating
electrochemical behaviour
corrosion resistance
Chemistry
Kemi
spellingShingle Co-base alloy
35N LT
MP35N
Ta
TiN coating
electrochemical behaviour
corrosion resistance
Chemistry
Kemi
Örnberg, Andreas
Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
description For patients suffering bradycardia, i.e., too slow heart rhythm, the common treatment is having a pacemaker implanted. The pacemaker system consists of the pacemaker and a pacing lead. The pacing lead is connected to the pacemaker and at the other end there is a stimulation electrode. The most common conductor material is a cobalt-based super alloy (MP35N® or 35N LT®), with the main constituents Ni, Co, Cr and Mo. The pacemaker electrode is often made of a substrate material with a rough surface coating. The substrate materials are predominantly platinum/iridium alloy and titanium. The material choice is of great importance for the performance and stability during long-term service. Excellent corrosion resistance is required to minimize elution of metal ions in the human body. In this thesis, the electrochemical behaviour and corrosion resistance of the Co-based alloys and Ta (as electrode substrate), in a phosphate buffer saline (PBS) solution with and without addition of H2O2, was investigated by means of potentiodynamic polarization, cyclic voltammetry, electrochemical impedance spectroscopy and simulated pacemaker pulsing. The metal release from the Co-based alloy during the passivation treatment and exposure in the synthetic biological media was measured by using inductive coupled plasma - atomic emission spectroscopy (ICP-AES). Moreover, surface composition was analyzed by using x-ray photoelectron spectroscopy. The results show that the chemical passivation of Co-based alloy 35N LT® increased the corrosion resistance and reduced Co release significantly, even in more hostile environment, i.e. PBS with addition of H2O2. The increased corrosion resistance is due to the Cr enrichment in the surface layer. The reduced Co release is due to a preferential dissolution of Co from the surface oxide layer during the chemical passivation. The electrochemical investigation of uncoated and rough TiN coated Ta show that uncoated Ta is not suitable electrode material due to formation of a highly resistive surface oxide film. Whereas the rough TiN coated Ta exhibits desirable electrochemical performance for pacemaker electrodes. The addition of H2O2 in the PBS has a large influence on the electrochemical behaviour of Ta, but the influence is small on the rough TiN coated Ta. === QC 20101122
author Örnberg, Andreas
author_facet Örnberg, Andreas
author_sort Örnberg, Andreas
title Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
title_short Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
title_full Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
title_fullStr Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
title_full_unstemmed Study of Electrochemical Behaviour and Corrosion Resistance of Materials for Pacemaker Lead Applications
title_sort study of electrochemical behaviour and corrosion resistance of materials for pacemaker lead applications
publisher KTH, Korrosionslära
publishDate 2007
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4650
http://nbn-resolving.de/urn:isbn:978-91-7178-809-2
work_keys_str_mv AT ornbergandreas studyofelectrochemicalbehaviourandcorrosionresistanceofmaterialsforpacemakerleadapplications
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